Micro-pressure oxygen cabin with negative ion generating device
By introducing dehumidification components and automatic cleaning systems into the micro-pressure oxygen chamber, the problems of rising humidity and dust accumulation are solved, achieving efficient dehumidification and a comfortable user experience.
Patent Information
- Application Number
- CN202510836254.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-21
- Publication Date
- 2025-09-12
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing micro-pressure oxygen chamber causes rising humidity during use, resulting in a poor user experience, and dust accumulation affects the normal operation of the dehumidification components and air quality.
The micro-pressure oxygen chamber is designed with a negative ion generator, and a dehumidification component is combined with semiconductor refrigeration sheets and heat dissipation fins for heat exchange. The dust net is automatically cleaned by the drive motor and screw, and the adjustment component provides personalized comfortable support.
Effectively reduce humidity, maintain the user experience, prevent dust accumulation, improve dehumidification efficiency and equipment maintenance convenience, and enhance user comfort.
Smart Images

Figure CN120616952A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of micro-pressure oxygen chambers, and in particular to a micro-pressure oxygen chamber with a negative ion generating device. Background Art
[0002] Micro-pressure oxygen chamber is a treatment device for various hypoxia. Hyperbaric oxygen is suitable for the following diseases: poisoning by harmful gases such as coal gas, hydrogen sulfide, and methane, cerebral thrombosis, cerebral hemorrhage, brain trauma, neuritis, vasculitis, diabetic gangrene, difficult-to-heal ulcers, fetal maldevelopment, neonatal asphyxia, acute gas embolism, decompression sickness, altitude sickness, sudden deafness, Meniere's syndrome, vertigo. People will feel dizzy after staying in a closed room in the city for a long time. When we come to the forest, the seaside, the waterfall and other places, we will feel refreshed. This is the air negative pressure chamber. The role of ions, air negative ions are also called negative oxygen ions, which refer to oxygen ions with negative charges due to the acquisition of excess electrons. They are formed by the combination of oxygen molecules in the air and free electrons. Natural discharge (lightning) phenomena, photoelectric effects, fountains, waterfalls, etc. can ionize the surrounding air to form negative oxygen ions. Negative oxygen ions are known as "vitamin oxygen", "air vitamin", "longevity factor", and "air vitamin" in the medical community. Compared with ordinary oxygen inhalation, high-pressure oxygen has greater power and better effects, and can directly use oxygen to solve the problem of hypoxia.
[0003] The micro-compression oxygen chamber creates a micro-high-pressure environment in the cabin by inputting compressed air of a certain pressure into the sealed steel cabin. At the same time, sufficient oxygen is input into the cabin. The body can better replenish oxygen in the micro-high-pressure oxygen-rich environment. When the experiencer is in the running oxygen chamber, as the experience time gets longer, the humidity in the cabin continues to rise, and the cabin pressure stabilizes at 30kPa. When the experiencer is in the cabin, the humidity in the cabin quickly rises to 90%, while the healthy humidity of the human body is between 45% and 65%. The increase in humidity in the cabin makes the experience feel poor. Therefore, it is particularly important to improve the existing micro-compression oxygen chamber and design a new micro-compression oxygen chamber with a negative ion generator to solve the above technical defects and improve the practicality of the overall micro-compression oxygen chamber. Summary of the Invention
[0004] The purpose of the present invention is to provide a micro-pressure oxygen chamber with a negative ion generating device. After the air passes through the dehumidification component, not only the humidity is reduced, but also the temperature is maintained, thereby ensuring the user experience. Through the cooperation of semiconductor refrigeration plates and heat dissipation fins, efficient heat exchange is achieved, the dehumidification efficiency is improved, and energy is saved. At the same time, dust is effectively prevented from accumulating inside the dehumidification component, ensuring the normal operation of the dehumidification component and the quality of the air. Through the cooperation of the drive motor and the screw, the dust net is automatically cleaned, and the maintenance efficiency and convenience of the equipment are improved, so as to solve the problems raised in the above background technology.
[0005] To achieve the above object, the present invention provides the following technical solutions:
[0006] A microcompression oxygen chamber with a negative ion generating device comprises a microcompression oxygen chamber body, a connection cover is rotatably connected to the top of the microcompression oxygen chamber body, a dehumidification assembly is provided inside the microcompression oxygen chamber body, a negative ion generating device is provided inside the microcompression oxygen chamber body and outside the dehumidification assembly, a rotating plate is rotatably connected to the top of the microcompression oxygen chamber body and below the connection cover, an adjustment assembly is provided at the bottom of the rotating plate and located at the top of the microcompression oxygen chamber body, a headrest is provided on the top of the rotating plate, a support pad is provided on the top of the rotating plate and outside the headrest, and a cleaning assembly is provided at the front end of the dehumidification assembly;
[0007] The dehumidification assembly is used to dehumidify the gas inside the micro-compression oxygen chamber body. The dehumidification assembly includes a first air duct fixedly connected to the inside of the micro-compression oxygen chamber body, a first connecting shell fixedly connected to the outside of the first air duct, a second air duct fixedly connected to the bottom of the first connecting shell, an end of the second air duct away from the first connecting shell fixedly connected to the second connecting shell, and a third air duct fixedly connected to the top of the second connecting shell. Multiple groups of heat dissipation fins are fixedly connected to the interiors of the first connecting shell and the second connecting shell, and a semiconductor refrigeration sheet is provided between the first connecting shell and the second connecting shell.
[0008] The adjusting assembly is used to adjust the angle of the rotating plate;
[0009] The cleaning component is used to prevent dust from entering the interior of the dehumidification component.
[0010] As a preferred solution of the present invention, a plurality of groups of heat dissipating fins are internally fixedly connected with a receiving tube, the receiving tube is designed in a multi-section meandering structure, and the interior of the receiving tube is filled with coolant.
[0011] As a preferred solution of the present invention, the end of the semiconductor refrigeration plate close to the first connecting shell is the cooling end, the end of the semiconductor refrigeration plate close to the second connecting shell is the heating end, and an air pump is fixedly connected to the interior of the third air duct.
[0012] As a preferred solution of the present invention, two sets of guide fans are fixedly connected to the front ends of the first air duct and the third air duct, and a collection box is fixedly connected to the outside of the first air duct.
[0013] As a preferred solution of the present invention, the cleaning component includes a dustproof net fixedly connected to the inside of the first air duct, a first driving screw is fixedly connected to the inside of the first air duct and at the front end of the dustproof net, the outer side of the first driving screw is threadedly connected to a movable frame, the movable frame is slidingly connected to the first air duct, and the first driving screw extends to the outside of the first air duct and is fixedly connected to the driving end of the first driving motor.
[0014] As a preferred solution of the present invention, a cleaning brush is fixedly connected to one end of the movable frame close to the dustproof net, a closing plate is rotatably connected to one end inside the first air duct and close to the collecting box, and a sleeve is fixedly connected between the first air duct and the collecting box and located on the outside of the closing plate.
[0015] As a preferred solution of the present invention, the interior of the sleeve is slidingly connected to a moving rod, the moving rod extends to the interior of the collection box and is rotatably connected to a driving rod, the driving rod is rotatably connected to the closing plate, a connecting ring is fixedly connected to the outside of the moving rod and located inside the sleeve, and a first compression spring is fixedly connected to the outside of the connecting ring and located outside the moving rod.
[0016] As a preferred solution of the present invention, the adjustment assembly includes a connecting frame fixedly connected to the top of the micro-compression oxygen chamber body and located on the outside of the rotating plate, the interior of the connecting frame is rotatably connected to a second drive screw, the outer side of the second drive screw is threadedly connected to a movable sleeve, the movable sleeve is slidingly connected to the connecting frame, the outer side of the movable sleeve is rotatably connected to a rotating frame, and the rotating frame is rotatably connected to the rotating plate.
[0017] As a preferred solution of the present invention, the end of the second driving screw away from the movable sleeve is fixedly connected to the first bevel gear, the outer side of the first bevel gear is meshedly connected to the second bevel gear, the end of the second bevel gear away from the first bevel gear is fixedly connected to the driving rod, and the end of the driving rod away from the second bevel gear is fixedly connected to the driving end of the second driving motor.
[0018] As a preferred solution of the present invention, the top of the rotating plate and both ends of the headrest are slidably connected with a fitting pad, the fitting pad extends to the inside of the rotating plate and is fixedly connected to a damping spring, the top of the rotating plate and below the support pad are fixedly connected to two groups of sliding rods, both ends of the sliding rods are slidably connected to a sliding block, the outer side of the sliding block is rotatably connected to the rotating rod, the end of the rotating rod away from the sliding block is rotatably connected to the support pad, and the two ends of the sliding rod and the outer sides of the two groups of sliding blocks are sleeved with a second compression spring.
[0019] Compared with the prior art, the present invention has the following beneficial effects:
[0020] 1. In the present invention, through the design of the dehumidification component, the dehumidification component is mainly composed of a first air duct, a first connecting shell, a second air duct, a second connecting shell, a third air duct, a heat dissipation fin, a semiconductor refrigeration chip, a receiving tube and an air pump. When working, the cooling end of the semiconductor refrigeration chip cools the heat dissipation fins and the receiving tube inside the first connecting shell, so that the temperature of the coolant inside the receiving tube decreases; at the same time, the heating end of the semiconductor refrigeration chip heats the heat dissipation fins and the receiving tube inside the second connecting shell, so that the temperature of the coolant inside the receiving tube increases, and the hot and humid air flows through the first air duct to the first The interior of the connecting shell comes into contact with the heat dissipation fins and the containing tube inside it, and when it gets cold, water droplets condense, thereby reducing the humidity of the air. Subsequently, the air is introduced into the interior of the second connecting shell through the second air duct, and comes into contact with the heat dissipation fins and the containing tube inside it to ensure the temperature of the outflowing air. Finally, the air is introduced into the interior of the micro-compression oxygen chamber body through the third air duct. This design ensures that the air not only reduces the humidity but also maintains the temperature after passing through the dehumidification component, thereby ensuring the user experience. Through the cooperation of semiconductor refrigeration plates and heat dissipation fins, efficient heat exchange is achieved, the dehumidification efficiency is improved, and energy is saved at the same time.
[0021] 2. In the present invention, through the design of the cleaning assembly, the cleaning assembly is mainly composed of a dustproof net, a first drive screw, a movable frame, a cleaning brush, a closing plate, a sleeve, a movable rod, a connecting ring, a first compression spring and other components. When too much dust adheres to the surface of the dustproof net, the first drive motor is started to drive the first drive screw to rotate, thereby causing the movable frame to move. The movable frame drives the cleaning brush to move to clean the surface of the dustproof net and remove the dust from the surface of the dustproof net. At the same time, the displacement of the movable frame contacts the movable rod, driving the movable rod to move, causing the drive rod to move and drive the closing plate to rotate, so that the dust can be moved to the inside of the collection box for collection. When the movable frame is reset, the connecting ring and the movable rod are reset by the first compression spring, so that the closing plate can close the connection between the collection box and the first air duct. This design effectively prevents dust from accumulating inside the dehumidification assembly, ensures the normal operation of the dehumidification assembly and the quality of the air. Through the cooperation of the drive motor and the screw, the dustproof net is automatically cleaned, and the maintenance efficiency and convenience of the equipment are improved.
[0022] 3. In the present invention, through the design of the rotating plate and the adjusting component, the adjusting component is mainly composed of a second driving screw, a movable sleeve, a rotating frame, a first bevel gear, a second bevel gear, a driving rod and a second driving motor. When working, the second driving motor is started to drive the second driving screw to rotate. The rotation of the second driving screw causes the movable sleeve to move, and then drives the rotating frame to move. The displacement of the rotating frame enables the rotating plate to rotate, thereby realizing angle adjustment. Through the cooperation of the driving motor and the screw, precise adjustment of the rotating plate is achieved to meet the needs of different users. The fitting pad is an adjustable support structure that is slidably connected to the top of the rotating plate and located at both ends of the headrest. It is usually made of soft and elastic material and is connected to the inside of the rotating plate through a damping spring. When the user lies down, the damping spring will automatically adjust the fit according to the weight and pressure of the head. The position of the cushion is adjusted to better fit the user's head contour. The fitting cushion can automatically adjust the support strength and position according to the user's head shape and weight, providing a more personalized comfort experience. The support cushion is a support structure fixed to the top of the rotating plate and located on the outside of the headrest. It is designed to support the user's neck and shoulders. The bottom of the support cushion is connected to the rotating plate by a sliding rod and a sliding block. The sliding block is equipped with a rotating rod, and the other end of the rotating rod is rotatably connected to the support cushion. When the user lies down, the second compression spring pushes the sliding block to move, thereby adjusting the position and angle of the support cushion to adapt to the neck curve of different users. The support cushion can provide appropriate support for the user's neck, help maintain the natural curvature of the neck, reduce neck pressure, and by automatically adjusting the position and angle of the support cushion, the support cushion can adapt to the neck needs of different users and improve the overall comfort when lying down. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Figure 1 It is a schematic diagram of the overall structure of the present invention;
[0024] Figure 2 This is a schematic diagram of the main structure of the micro-pressure oxygen chamber of the present invention;
[0025] Figure 3 This is a schematic diagram of the back structure of the micro-pressure oxygen chamber body of the present invention;
[0026] Figure 4 This is a schematic diagram of the structure of the dehumidification component of the present invention;
[0027] Figure 5 This is a schematic structural diagram of the first connecting shell and the second connecting shell of the present invention;
[0028] Figure 6 This is a schematic diagram of the cleaning component structure of the present invention;
[0029] Figure 7 For the present invention Figure 6 Middle A is a schematic diagram of the enlarged structure;
[0030] Figure 8 This is a schematic diagram of the structure of the regulating component of the present invention;
[0031] Figure 9 This is a schematic diagram of the rotating frame structure of the present invention;
[0032] Figure 10 This is a schematic diagram of the rotating plate structure of the present invention;
[0033] Figure 11 This is a structural schematic diagram of the sliding rod of the present invention.
[0034] Figure: 1, micro-pressure oxygen chamber body; 2, connecting cover; 3, dehumidification assembly; 4, negative ion generator; 5, rotating plate; 6, adjustment assembly; 7, headrest; 8, support pad; 9, cleaning assembly; 10, first air duct; 11, first connecting shell; 12, second air duct; 13, second connecting shell; 14, third air duct; 15, heat dissipation fin; 16, semiconductor cooling plate; 17, storage tube; 18, collection box; 19, dust screen; 20, first Driving screw; 21. Moving frame; 22. Closing plate; 23. Sleeve; 24. Moving rod; 25. Driving rod; 26. Connecting ring; 27. First compression spring; 28. Connecting frame; 29. Second driving screw; 30. Moving sleeve; 31. Rotating frame; 32. First bevel gear; 33. Second bevel gear; 34. Fitting pad; 35. Damping spring; 36. Sliding rod; 37. Sliding block; 38. Rotating rod; 39. Second compression spring. DETAILED DESCRIPTION
[0035] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of the present invention.
[0036] Example:
[0037] See also Figures 1-11 , the present invention provides a technical solution:
[0038] A microcompression oxygen chamber with a negative ion generating device comprises a microcompression oxygen chamber body 1, a connection cover 2 is rotatably connected to the top of the microcompression oxygen chamber body 1, a dehumidification assembly 3 is provided inside the microcompression oxygen chamber body 1, a negative ion generating device 4 is provided inside the microcompression oxygen chamber body 1 and outside the dehumidification assembly 3, a rotating plate 5 is rotatably connected to the top of the microcompression oxygen chamber body 1 and located below the connection cover 2, an adjustment assembly 6 is provided at the bottom of the rotating plate 5 and located at the top of the microcompression oxygen chamber body 1, a headrest 7 is provided on the top of the rotating plate 5, a support pad 8 is provided on the top of the rotating plate 5 and outside the headrest 7, and a cleaning assembly 9 is provided at the front end of the dehumidification assembly 3;
[0039] The dehumidification assembly 3 is used to dehumidify the gas inside the micro-compression oxygen chamber body 1. The dehumidification assembly 3 includes a first air duct 10 fixedly connected to the inside of the micro-compression oxygen chamber body 1. The outside of the first air duct 10 is fixedly connected to a first connecting shell 11. The bottom of the first connecting shell 11 is fixedly connected to a second air duct 12. The end of the second air duct 12 away from the first connecting shell 11 is fixedly connected to a second connecting shell 13. The top of the second connecting shell 13 is fixedly connected to a third air duct 14. The interiors of the first connecting shell 11 and the second connecting shell 13 are both fixedly connected to multiple groups of heat dissipation fins 15. A semiconductor refrigeration sheet 16 is provided between the first connecting shell 11 and the second connecting shell 13.
[0040] The adjusting component 6 is used to adjust the angle of the rotating plate 5;
[0041] The cleaning component 9 is used to prevent dust from entering the interior of the dehumidification component 3.
[0042] Furthermore, the interior of the multiple groups of heat dissipating fins 15 is fixedly connected with a receiving tube 17, and the receiving tube 17 is designed in a multi-section meandering structure. The interior of the receiving tube 17 is filled with coolant, and the end of the semiconductor refrigeration sheet 16 close to the first connecting shell 11 is the cooling end, and the end of the semiconductor refrigeration sheet 16 close to the second connecting shell 13 is the heating end. The interior of the third air duct 14 is fixedly connected with an air pump, and the multi-section meandering structure design of the receiving tube 17 can increase the contact area with the multiple groups of heat dissipating fins 15. The cooling end of the semiconductor refrigeration sheet 16 cools the heat dissipating fins 15 and the receiving tube 17 inside the first connecting shell 11, so that the temperature of the coolant inside the receiving tube 17 drops, and the heating of the semiconductor refrigeration sheet 16 is reduced. The hot end heats the heat dissipating fins 15 and the receiving tube 17 inside the second connecting shell 13, so that the temperature of the coolant inside the receiving tube 17 rises, and the hot and humid air flows to the interior of the first connecting shell 11 through the first air duct 10. The hot and humid air contacts the heat dissipating fins 15 and the receiving tube 17 inside thereof, condenses water droplets when it is cold, and reduces the humidity of the air. Then, the air is introduced into the interior of the second connecting shell 13 through the second air duct 12, and contacts the heat dissipating fins 15 and the receiving tube 17 inside thereof to ensure the temperature of the outflowing air. The air is introduced into the interior of the micro-compression oxygen chamber body 1 through the third air duct 14, so that the humidity of the air is reduced and the temperature is maintained after passing through the dehumidification component 3, so as to ensure the user's experience.
[0043] Among them, the front end of the first air duct 10 and the front end of the third air duct 14 are fixedly connected with two groups of guide fans, the outside of the first air duct 10 is fixedly connected with a collecting box 18, and the outside of the second air duct 12 is fixedly connected with a drain pipe. When too many water droplets attached to the inside of the first connecting shell 11 fall into the inside of the second air duct 12, the condensed water can be drained through the drain pipe to prevent the accumulated water from affecting the operation of the dehumidification component 3. The air pump is started to generate negative pressure inside the third air duct 14, and negative pressure is generated inside the first air duct 10 through the second air duct 12, and the air at the top of the micro-compression oxygen chamber main body 1 is introduced into the interior of the first air duct 10. When the air at the top of the micro-compression oxygen chamber main body 1 is introduced into the interior of the first air duct 10, the air can be guided by the guide fan to promote the circulation of air in multiple groups of air ducts.
[0044] Secondly, the cleaning component 9 includes a dustproof net 19 fixedly connected to the inside of the first air duct 10, and a first driving screw 20 is fixedly connected to the inside of the first air duct 10 and at the front end of the dustproof net 19. The outer side of the first driving screw 20 is threadedly connected to a movable frame 21. The movable frame 21 is slidably connected to the first air duct 10, and the first driving screw 20 extends to the outside of the first air duct 10 and is fixedly connected to the driving end of the first driving motor. When the air at the top of the micro-compression oxygen chamber main body 1 is introduced into the interior of the first air duct 10, the dust carried by the air introduced into the first air duct 10 can be blocked by the dustproof net 19, preventing the dust from being introduced into the interior of the first air duct 10 and contacting the heat dissipation fins 15, thereby affecting the heat exchange effect of the heat dissipation fins 15. At the same time, the dust on the top of the micro-compression oxygen chamber main body 1 can also be vacuumed, thereby solving the problem that a certain amount of dust will accumulate in the micro-compression oxygen chamber main body 1 after frequent use. If there is too much dust, the user experience will be greatly reduced.
[0045] The first drive motor 20 is driven by the first drive screw 20, which is rotated to move the first drive screw 20, and the second drive screw 20 is driven by the first drive motor 21. The first drive motor 20 is driven by the first drive screw 20, and the first drive screw 20 is driven by the first drive motor 21. The first drive motor 20 is driven by the first drive screw 20, and the first drive motor 20 is driven by the first drive screw 20, which is rotated to move the first drive screw 20, and the first drive motor 20 is driven by ... The surface of the dust is cleaned, and the dust is cleaned from the surface of the dustproof net 19, and the dust is guided by the bottom of the movable frame 21, so that the dust is displaced to the outside of the closing plate 22. The displacement of the movable frame 21 contacts the movable rod 24, driving the movable rod 24 to displace, so that the driving rod 25 can be displaced, driving the closing plate 22 to rotate, so that the dust can be displaced to the inside of the collection box 18, and the dust is collected and processed by the collection box 18. When the movable frame 21 is reset, the connecting ring 26 is driven to reset by the first compression spring 27, so that the movable rod 24 is reset, and the driving rod 25 is driven to reset, so that the closing plate 22 can close the connection between the collection box 18 and the first air duct 10, thereby preventing the air at the top of the micro-compression oxygen chamber body 1 from being introduced into the interior of the first air duct 10, so that the dust inside the collection box 18 is introduced into its interior, affecting the collection of dust.
[0046] Furthermore, the adjustment component 6 includes a connecting frame 28 fixedly connected to the top of the micro-compression oxygen chamber body 1 and located on the outside of the rotating plate 5. The interior of the connecting frame 28 is rotatably connected to a second drive screw 29, and the outer side of the second drive screw 29 is threadedly connected to a movable sleeve 30. The movable sleeve 30 is slidably connected to the connecting frame 28, and the outer side of the movable sleeve 30 is rotatably connected to a rotating frame 31. The rotating frame 31 is rotatably connected to the rotating plate 5. The end of the second drive screw 29 away from the movable sleeve 30 is fixedly connected to a first bevel gear 32, and the outer side of the first bevel gear 32 is meshedly connected to a second bevel gear 33. One end of the second bevel gear 33 away from the first bevel gear 32 is fixedly connected to the driving rod 25, and one end of the driving rod 25 away from the second bevel gear 33 is fixedly connected to the driving end of the second driving motor. When the second driving motor is started, the second driving screw 29 is driven to rotate, so that the movable sleeve 30 can be displaced, and the rotating frame 31 is driven to be displaced, so that the rotating plate 5 can be rotated. When the user lies on the top of the micro-compression oxygen chamber body 1, the user's upper body can be lifted, so that the user can adjust the angle of the rotating plate 5 according to his or her own needs, thereby increasing the comfort of use.
[0047] Furthermore, the top of the rotating plate 5 and the two ends of the headrest 7 are slidably connected to the fitting pad 34, the fitting pad 34 extends to the inside of the rotating plate 5 and is fixedly connected to the damping spring 35, the top of the rotating plate 5 and the bottom of the support pad 8 are fixedly connected to two sets of sliding rods 36, both ends of the sliding rods 36 are slidably connected to the sliding blocks 37, the outer side of the sliding block 37 is rotatably connected to the rotating rod 38, the end of the rotating rod 38 away from the sliding block 37 is rotatably connected to the support pad 8, and the two ends of the sliding rod 36 and the outer sides of the two sets of sliding blocks 37 are A second compression spring 39 is provided. When the user lies on the top of the micro-compression oxygen chamber body 1, the user's head is supported by the headrest 7. The damping spring 35 drives the fitting pad 34 to move so that the fitting pad 34 fits the user's head. The user's neck contacts the support pad 8. The second compression spring 39 drives the sliding block 37 to move, which causes the rotating rod 38 to move, and drives the support pad 8 to move so that the support pad 8 can fit the user's neck. Through the overall design, the comfort of use can be effectively increased.
[0048] In this embodiment, the implementation scenario is specifically as follows: during actual use, the air pump is started to generate negative pressure inside the third air duct 14, and negative pressure is generated inside the first air duct 10 through the second air duct 12, and the air at the top of the micro-compression oxygen chamber main body 1 is introduced into the interior of the first air duct 10. When the air at the top of the micro-compression oxygen chamber main body 1 is introduced into the interior of the first air duct 10, the air can be guided by the guide fan to promote the circulation of air in multiple groups of air ducts. The cooling end of the semiconductor refrigeration plate 16 cools the heat dissipating fins 15 and the receiving tube 17 inside the first connecting shell 11, so that the temperature of the coolant inside the receiving tube 17 drops, and the heating end of the semiconductor refrigeration plate 16 heats the heat dissipating fins 15 and the receiving tube 17 inside the second connecting shell 13. The humid hot air is introduced into the interior of the second connecting shell 13 through the second air duct 12, and contacts the heat dissipation fins 15 and the receiving tube 17 inside the humid hot air. The temperature of the outflowing air is guaranteed. The air is introduced into the interior of the micro-compression oxygen chamber body 1 through the third air duct 14, so that the humidity of the air is reduced and the temperature is maintained after passing through the dehumidification component 3, so as to ensure the user's experience. When the air at the top of the micro-compression oxygen chamber body 1 is introduced into the interior of the first air duct 10, the dust carried by the air introduced into the first air duct 10 can be prevented by the dustproof net 19. The dust is blocked to prevent the dust from entering the interior of the first air duct 10 and contacting the heat dissipation fins 15, thereby affecting the heat exchange effect of the heat dissipation fins 15. At the same time, the dust on the top of the micro-compression oxygen chamber main body 1 can be vacuumed, which solves the problem that a certain amount of dust will accumulate in the micro-compression oxygen chamber main body 1 after frequent use. If there is too much dust, the user's experience will be greatly reduced. When too much dust adheres to the surface of the dustproof net 19 and affects the circulation of gas, the first drive motor is started to drive the first drive screw 20 to rotate, so that the moving part is displaced, and the cleaning brush is driven to displace to clean the surface of the dustproof net 19. The dust is cleaned from the surface of the dustproof net 19 and the dust is guided through the bottom of the movable frame 21 so that the dust can be removed. The dust is displaced to the outside of the closing plate 22, and the displacement of the moving frame 21 contacts the moving rod 24, driving the moving rod 24 to displace, so that the driving rod 25 can be displaced, driving the closing plate 22 to rotate, so that the dust can be displaced to the inside of the collection box 18, and the dust is collected and processed by the collection box 18. When the moving frame 21 is reset, the connecting ring 26 is driven to reset by the first compression spring 27, so that the moving rod 24 is reset, and the driving rod 25 is driven to reset, so that the closing plate 22 can close the connection between the collection box 18 and the first air duct 10, preventing the air at the top of the micro-compression oxygen chamber body 1 from being introduced into the interior of the first air duct 10, so that the dust inside the collection box 18 is introduced into its interior, affecting the collection of dust.The second drive motor is started to drive the second drive screw 29 to rotate, so that the movable sleeve 30 can be displaced, and the rotating frame 31 can be displaced, thereby enabling the rotating plate 5 to rotate. When the user lies on top of the micro-compression oxygen chamber body 1, the user's upper body can be raised, so that the user can adjust the angle of the rotating plate 5 according to their own needs, thereby increasing the comfort of use. When the user lies on top of the micro-compression oxygen chamber body 1, the headrest 7 supports the user's head, and the damping spring 35 drives the fitting pad 34 to move so that the fitting pad 34 fits the user's head. The user's neck contacts the support pad 8. The second compression spring 39 drives the sliding block 37 to move, so that the rotating rod 38 is displaced, and the support pad 8 is driven to move so that the support pad 8 can fit the user's neck. The overall design can effectively increase the comfort of use. Compared with existing micro-compression oxygen chambers, the present invention can improve the overall practicality of the micro-compression oxygen chamber through design.
[0049] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.
Claims
1. A micro-pressure oxygen chamber with a negative ion generating device, comprising a micro-pressure oxygen chamber body (1), characterized in that: The top of the microcompression oxygen chamber body (1) is rotatably connected to a connecting cover (2), a dehumidification assembly (3) is provided inside the microcompression oxygen chamber body (1), a negative ion generating device (4) is provided inside the microcompression oxygen chamber body (1) and located outside the dehumidification assembly (3), a rotating plate (5) is rotatably connected to the top of the microcompression oxygen chamber body (1) and located below the connecting cover (2), an adjusting assembly (6) is provided at the bottom of the rotating plate (5) and located at the top of the microcompression oxygen chamber body (1), a headrest (7) is provided at the top of the rotating plate (5), a support pad (8) is provided at the top of the rotating plate (5) and located outside the headrest (7), and a cleaning assembly (9) is provided at the front end of the dehumidification assembly (3); The dehumidification component (3) is used to dehumidify the gas inside the micro-compression oxygen chamber body (1), and the dehumidification component (3) includes a first air duct (10) fixedly connected to the inside of the micro-compression oxygen chamber body (1), the outer side of the first air duct (10) is fixedly connected to a first connecting shell (11), the bottom of the first connecting shell (11) is fixedly connected to a second air duct (12), the end of the second air duct (12) away from the first connecting shell (11) is fixedly connected to a second connecting shell (13), the top of the second connecting shell (13) is fixedly connected to a third air duct (14), the interiors of the first connecting shell (11) and the second connecting shell (13) are fixedly connected to multiple groups of heat dissipation fins (15), and a semiconductor refrigeration plate (16) is provided between the first connecting shell (11) and the second connecting shell (13); The adjusting component (6) is used to adjust the angle of the rotating plate (5); The cleaning component (9) is used to prevent dust from entering the interior of the dehumidification component (3).
2. A microbaric oxygen chamber with a negative ion generating device according to claim 1, characterized in that: The interiors of the multiple groups of heat dissipation fins (15) are fixedly connected with a receiving tube (17), the receiving tube (17) is designed in a multi-section serpentine structure, and the interiors of the receiving tube (17) are filled with cooling liquid.
3. The microbaric oxygen chamber with a negative ion generating device according to claim 1, characterized in that: The end of the semiconductor refrigeration plate (16) close to the first connecting shell (11) is a cooling end, the end of the semiconductor refrigeration plate (16) close to the second connecting shell (13) is a heating end, and an air pump is fixedly connected to the interior of the third air duct (14).
4. The microbaric oxygen chamber with a negative ion generating device according to claim 1, characterized in that: Two sets of guide fans are fixedly connected to the front ends of the first air duct (10) and the third air duct (14), and a collection box (18) is fixedly connected to the outside of the first air duct (10).
5. The microbaric oxygen chamber with a negative ion generating device according to claim 4, characterized in that: The cleaning assembly (9) includes a dustproof net (19) fixedly connected to the inside of the first air duct (10); a first driving screw (20) is fixedly connected to the inside of the first air duct (10) and at the front end of the dustproof net (19); the outer side of the first driving screw (20) is threadedly connected to a movable frame (21); the movable frame (21) is slidably connected to the first air duct (10); the first driving screw (20) extends to the outside of the first air duct (10) and is fixedly connected to the driving end of the first driving motor.
6. The microbaric oxygen chamber with a negative ion generating device according to claim 4, characterized in that: A cleaning brush is fixedly connected to one end of the movable frame (21) close to the dustproof net (19); a closing plate (22) is rotatably connected to one end of the first air duct (10) close to the collection box (18); and a sleeve (23) is fixedly connected between the first air duct (10) and the collection box (18) and located on the outside of the closing plate (22).
7. The microbaric oxygen chamber with a negative ion generating device according to claim 6, characterized in that: The interior of the sleeve (23) is slidably connected to a moving rod (24), and the moving rod (24) extends to the interior of the collection box (18) and is rotatably connected to a driving rod (25), and the driving rod (25) is rotatably connected to the closing plate (22). A connecting ring (26) is fixedly connected to the outside of the moving rod (24) and located inside the sleeve (23), and a first compression spring (27) is fixedly connected to the outside of the connecting ring (26) and located outside the moving rod (24).
8. The microbaric oxygen chamber with a negative ion generating device according to claim 1, characterized in that: The regulating assembly (6) comprises a connecting frame (28) fixedly connected to the top of the micro-compression oxygen chamber body (1) and located on the outside of the rotating plate (5); the interior of the connecting frame (28) is rotatably connected to a second driving screw (29); the outer side of the second driving screw (29) is threadedly connected to a moving sleeve (30); the moving sleeve (30) is slidably connected to the connecting frame (28); the outer side of the moving sleeve (30) is rotatably connected to a rotating frame (31); and the rotating frame (31) is rotatably connected to the rotating plate (5).
9. The micro-pressure oxygen chamber with a negative ion generating device according to claim 8, characterized in that: One end of the second driving screw (29) away from the movable sleeve (30) is fixedly connected to the first bevel gear (32), the outer side of the first bevel gear (32) is meshedly connected to the second bevel gear (33), one end of the second bevel gear (33) away from the first bevel gear (32) is fixedly connected to the driving rod (25), and one end of the driving rod (25) away from the second bevel gear (33) is fixedly connected to the driving end of the second driving motor.
10. The microbaric oxygen chamber with a negative ion generating device according to claim 1, characterized in that: The top of the rotating plate (5) and both ends of the headrest (7) are slidably connected to a fitting pad (34), and the fitting pad (34) extends to the inside of the rotating plate (5) and is fixedly connected to a damping spring (35). The top of the rotating plate (5) and below the support pad (8) are fixedly connected to two groups of sliding rods (36), and both ends of the sliding rods (36) are slidably connected to a sliding block (37). The outer side of the sliding block (37) is rotatably connected to a rotating rod (38), and one end of the rotating rod (38) away from the sliding block (37) is rotatably connected to the support pad (8). The two ends of the sliding rod (36) and the outer sides of the two groups of sliding blocks (37) are sleeved with a second compression spring (39).